论文标题

过渡区域对AIA观测的贡献

Transition region contribution to AIA observations in the context of coronal heating

论文作者

Schonfeld, Samuel J., Klimchuk, James A.

论文摘要

我们研究了由大气成像组件(AIA)在太阳能动力学天文台(SDO)上观察到的冠状环的过渡区域和电晕的相对贡献。使用EBTEL(环路的基于焓的热演化)流体动力模拟,我们模拟具有多个长度和能量通量的循环,这些循环是通过从具有不同斜率和事件之间的最小斜率延迟的事件随机加热的多个长度和能量通量的,以研究这些参数如何影响可观察的循环特性。我们为每个实现产生了来自电晕和过渡区域的AIA强度。这些不同参数生成的模型内部和之间的变化说明了窄带成像对冠状加热细节的敏感性。然后,我们分析了许多观察到的活跃区域的过渡区域和冠状发射,并与模型中的趋势找到广泛的一致性。在两个模型和观测值中,过渡区域的亮度都是显着的,通常大于所有六个“冠状” AIA通道中的冠状亮度。我们还确定了与加热理论一致的反相关关系,在峰值温度的差分发射度量(DEM)的斜率之间以及观察到的冠状动脉与过渡区域强度的比率。这些结果突出了窄带观测的使用以及正确考虑过渡区域在冠状加热研究中的重要性。

We investigate the relative contributions from the transition region and corona of coronal loops observed by the Atmospheric Imaging Assembly (AIA) on the Solar Dynamics Observatory (SDO). Using EBTEL (Enthalpy-Based Thermal Evolution of Loops) hydrodynamic simulations, we model loops with multiple lengths and energy fluxes heated randomly by events drawn from power-law distributions with different slopes and minimum delays between events to investigate how each of these parameters influences observable loop properties. We generate AIA intensities from the corona and transition region for each realization. The variations within and between models generated with these different parameters illustrate the sensitivity of narrowband imaging to the details of coronal heating. We then analyze the transition region and coronal emission from a number of observed active regions and find broad agreement with the trends in the models. In both models and observations, the transition region brightness is significant, often greater than the coronal brightness in all six "coronal" AIA channels. We also identify an inverse relationship, consistent with heating theories, between the slope of the differential emission measure (DEM) coolward of the peak temperature and the observed ratio of coronal to transition region intensity. These results highlight the use of narrowband observations and the importance of properly considering the transition region in investigations of coronal heating.

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